Preliminary study of radio frequency waves in hypervelocity impact plasma

International Journal of Impact Engineering - Tập 179 - Trang 104667 - 2023
Kimia Fereydooni1, Nicolas Lee1, Sigrid Elschot1
1Stanford University, 450 Serra Mall, Stanford, CA 94305, USA

Tài liệu tham khảo

Close, S., Colestock, P., Kelley, M., Cox, L., Lee, N. “Electromagnetic Pulses generated by meteoroid impacts on spacecraft”, 2010. Foschini, L. “Electromagnetic interference from plasmas generated in meteoroids impacts”, 1998. Goel, 2015, Electrical anomalies on spacecraft due to hypervelocity impacts Caswell, 1995, Olympus end of life anomaly — A perseid meteoroid impact event?, Int J Impact Eng Neish, M.J., Takahashi, M., Maejima, H., Kusawake, H., Kawakita, S., Goka, T. in “Proceedings of 4th European Conference on Space Debris”, 2005. Garrett, 2013, Impact-induced ESD and EMI/EMP effects on spacecraft—A review, IEEE Trans Plasma Sci, 10.1109/TPS.2013.2286181 Nuttall, 2022, A thermodynamic analysis of hypervelocity impacts on metals, Int J Impact Eng Johnson, 2011, Detection and analysis of RF data from hypervelocity impacts Close, 2013, Detection of electromagnetic pulses produced by hypervelocity micro particle impact plasmas, Phys Plasmas, 10.1063/1.4819777 Nuttall, 2016, Detection of hypervelocity impact radio frequency pulses through prior constrained source separation, Radio Sci, 10.1002/2016RS006108 Linscott, 2013, ISOLDE: iSS-based study of LEO debris and meteoroid electrical effects Maki, 2004, Radio-wave emission due to hypervelocity impacts in relation to optical observation and projectile speed, Adv Space Res, 10.1016/j.asr.2003.02.032 Takano, 2002, Microwave emission due to hypervelocity impacts and its correlation with mechanical destruction, J Appl Phys, 10.1063/1.1513885 Bianchi, R., Capaccioni, F., Cerroni, P. “Radiofrequency emissions observed during macroscopic hypervelocity impact experiments”, 1984. Kelley, M., Pancoast, S., Close, S., Wang, Z. “Analysis of electromagnetic and electrostatic effects of particle impacts on spacecraft”, 2012. Young, S.A.Q., Lee, N., Estacio, B., Matthews, I., Shohet, G., Bassette, R., Banerjee, S., Close, S. “Electric field polarization of electromagnetic radiation from micrometeoroid and dust impacts on spacecraft”, 2019. Starks, 2006, Seeking radio emissions from hypervelocity micrometeoroid impacts: early experimental results from the ground, Int J Impact Eng, 10.1016/j.ijimpeng.2006.09.044 Estacio, 2021, Dust and atmospheric influence on plasma properties observed in light gas gun hypervelocity impact experiments, Int J Impact Eng, 10.1016/j.ijimpeng.2021.103833 Fletcher, 2015, Simulating plasma production from hypervelocity impacts, Phys Plasmas, 10.1063/1.4930281 Fletcher, 2017, Particle-in-cell simulations of an RF emission mechanism associated with hypervelocity impact plasmas, Phys Plasmas, 10.1063/1.4980833 Li, 2014, Theoretical and numerical predictions of hypervelocity impact-generated plasma, Phys Plasmas Song, 2015, Investigation on plasma generated during hypervelocity impact at different impact velocities and angles, Phys Plasmas, 10.1063/1.4938516 Song, 2016, Influence of impact conditions on plasma generation during hypervelocity impact by aluminum projectile, Phys Plasmas, 10.1063/1.4956440 Maki, 2005, Dependence of microwave emissions from hypervelocity impacts on the target material, J Appl Phys, 97, 10.1063/1.1896092 Ferguson, D., et al. “A U.S. Round-Robin experiment on characteristics of arc plasma expansion”, 2012. Vayner, 2013, First preliminary results from U.S. Round-Robin tests, IEEE Trans Plasma Sci, 10.1109/TPS.2013.2262639 Tang, 2019, Experimental research on discharge characteristics induced by hypervelocity impact on split targets with potential gradient, Acta Mech, 10.1007/s00707-019-02483-y Tang, 2022, Discharge and electromagnetic radiation behind the hole of simulated charging satellite surface under impact, Waves Random Complex Media, 10.1080/17455030.2022.2163056 Estacio, 2023, Experimental evidence of rapid target charging electromagnetic pulse from Hypervelocity Impact, Int J Impact Eng, 10.1016/j.ijimpeng.2022.104473 Hew, 2018, Hypervelocity impact flash and plasma on electrically biased spacecraft surfaces, Int J Impact Eng, 10.1016/j.ijimpeng.2018.05.008 Hew, 2021, Hypervelocity impact flash expansion geometry under various spacecraft surface electrical conditions, Int J Impact Eng, 10.1016/j.ijimpeng.2020.103792 Nuttall, A. “Radio-frequency emissions from hypervelocity impacts on charged spacecraft”, 2018. Lee, 2013, Theory and experiments characterizing hypervelocity impact plasmas on biased spacecraft materials, Phys Plasmas, 20, 10.1063/1.4794331 Lee, 2012, Measurements of freely-expanding plasma from hypervelocity impacts, Int J Impact Eng, 10.1016/j.ijimpeng.2012.01.002 Goel, 2015, Estimation of hypervelocity impact parameters from measurements of optical flash, Int J Impact Eng, 10.1016/j.ijimpeng.2015.05.008 Goel, 2015, Design and testing of miniaturized plasma sensor for measuring hypervelocity impact plasmas, Rev Scient Instrum, 10.1063/1.4917276 Fereydooni, 2022, Plasma production and composition from hypervelocity impacts on solar cell cover glass, Int J Impact Eng, 10.1016/j.ijimpeng.2022.104325 Lee, 2013, Composition of plasmas formed from debris impacts on spacecraft surfaces Vetterli, M., Kovačević, J., Goyal, V.K., “Foundations of signal processing”, Cambridge University Press, 2016. Vaseghi, S.V., “Advanced digital signal processing and noise reduction”, JOHN WILEY & Sons, 2020.